Computational Methodology for Iris Segmentation and Detection in Images from the Eyes Region Using Convolutional Neural Networks

Fredson Costa Rodrigues, A. C. D. Paiva, João Almeida, Geraldo Braz Júnior, Aristófanes Corrêa, A. C. B. Soares
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Abstract

Eye tracking is an application of computer vision responsible for detecting the iris and pupil in the eye region. The usefulness of this tracking contributes to research that assesses cognitive aspects through pupillary reactions identified in these detected regions. Another application in this task is iris recognition in digital biometrics. This study aims to carry out the verification and detection of the iris in images of the eye region occluded by eyelashes, eyelids and specular reflexes, through a deep neural network called At-Unet in this article. In order to assist in eye tracking this method achieves 95.32 % of data coefficient when segmenting the iris of the eyes, indicating the efficiency of this methodology.
基于卷积神经网络的眼部图像虹膜分割与检测的计算方法
眼动追踪是计算机视觉的一种应用,负责检测眼睛区域的虹膜和瞳孔。这种跟踪的有用性有助于通过在这些检测区域识别瞳孔反应来评估认知方面的研究。这项任务的另一个应用是数字生物识别中的虹膜识别。本研究旨在通过深度神经网络At-Unet对被睫毛、眼睑和镜面反射遮挡的眼部区域图像进行虹膜的验证和检测。为了辅助眼动追踪,该方法在分割虹膜时达到95.32%的数据系数,表明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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